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1.
Pathol Res Pract ; 256: 155230, 2024 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-38461693

RESUMEN

Papillary thyroid carcinoma (PTC) is generally recognized as a slow-growing tumor. However, a small subset of patients may still experience relapse or metastasis shortly after therapy, leading to a poor prognosis and raising concerns about excessive medical treatment. One major challenge lies in the inadequacy of effective biomarkers for accurate risk stratification. Long non-coding RNAs (lncRNAs), which are closely related to malignant characteristics and poor prognosis, play a significant role in the genesis and development of PTC through various pathways. The objective of this review is to provide a comprehensive summary of the biological functions of lncRNAs in PTC, identify prognosis-relevant lncRNAs, and explore their potential mechanisms in drug resistance to BRAF kinase inhibitors, tumor dedifferentiation, and lymph node metastasis. By doing so, this review aims to offer valuable references for both basic research and the prediction of PTC prognosis.


Asunto(s)
Carcinoma Papilar , ARN Largo no Codificante , Neoplasias de la Tiroides , Humanos , Cáncer Papilar Tiroideo/genética , Pronóstico , Neoplasias de la Tiroides/patología , ARN Largo no Codificante/genética , Carcinoma Papilar/patología , Recurrencia Local de Neoplasia , Proteínas Proto-Oncogénicas B-raf/metabolismo
2.
Dalton Trans ; 50(29): 10142-10146, 2021 Jul 27.
Artículo en Inglés | MEDLINE | ID: mdl-34231597

RESUMEN

The strict tolerance space of three-dimensional (3D) crystalline structures is still a significant challenge in the area of switching dielectrics in comparison with lower-dimensional structures. Generally, the function of crystalline materials can be given or adjusted by controlling the environment in which synthesis takes place or the packing rearrangement. Using this method, special functional enhancements or changes in the dielectrics can be realized by improving the synthetic strategies. Here, a 3D switchable dielectric compound [MeHdabco]K(BF4)3 was achieved by employing the temperature selective effect. In particular, its structure is completely different from the usual 3D perovskite structure, which is constructed using two different cation-template frameworks. Moreover, the 3D [MeHdabco]K(BF4)3 shows a structural phase transition at 358 K. The thermal analysis (differential scanning calorimetry (DSC)) and X-ray diffractometry results provided evidence of these phase changes. This work provides a feasible strategy that can be used to achieve the different structures of an 'isomer', and enrich the method used for designing diverse functional materials.

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